Search PubMed⌕ Search

Biomedical subjects

D M Roden

Publications and source records attributed to D M Roden.

At least 127 records · Page 7Linked to original sources

Genetically determined steady-state interaction between encainide and quinidine in patients with arrhythmias.

A genetically determined pharmacokinetic and pharmacodynamic interaction between quinidine and single doses of encainide in healthy volunteers has previously been described. In subjects with the extensive metabolizer phenotype, quinidine blunted encainide-induced QRS prolongation (a marker of sodium channel block) because it impaired encainide biotransformation to the potent active metabolites O-desmethyl encainide (ODE) and 3-methoxy-O-desmethyl encainide. Therefore, the purpose of this study was to test the hypothesis that quinidine would inhibit sodium channel block (and by inference arrhythmia suppression) during encainide therapy in patients with the extensive metabolizer phenotype. Surprisingly, however, in eight extensive metabolizer patients, the extent of QRS prolongation during chronic encainide therapy was unaltered by quinidine (139 +/- 21 vs. 139 +/- 22 msec) whereas arrhythmia suppression was enhanced (64 +/- 22 to 77 +/- 19%; P = .05). Plasma concentration data demonstrated that although encainide metabolism to ODE was partially impaired by quinidine, subsequent 3-methoxy-O-desmethyl encainide formation from ODE was virtually completely inhibited; thus steady-state plasma ODE remained unchanged whereas plasma encainide increased 10-fold (21 +/- 30 to 240 +/- 118 ng/ml; P less than .05). In contrast, no changes in disposition or in pharmacodynamics were observed in two poor metabolizers. It is concluded that the effect of this drug interaction in patients is determined by differential sensitivities to inhibition by quinidine of encainide O-demethylation and subsequent ODE 3-methoxylation. Evaluation of potential drug interactions should include assessment of possible genetic factors as well as of steady-state effects.

Aged↗

Improved high-performance liquid chromatographic assay for encainide and its metabolites in human body fluids.

Methods reported previously for the determination of encainide and its metabolites in biological fluids have not been extensively described and evaluated. We report an improved high-performance liquid chromatographic assay for the quantification of these compounds in plasma and urine with complete estimation of the accuracy and reproducibility of the analytical method. The major improvements consist of: (1) the use of ethaverine as an appropriate internal standard; (2) the use of the salting-out technique which improves the extraction recovery for the metabolites of encainide and the sensitivity of the assay; and (3) a shift of the ultraviolet absorption wavelength from 254 to 270 nm to increase the selectivity of the detection.

Anilides↗

Magnesium treatment of ventricular arrhythmias.

The association between marked hypomagnesemia and arrhythmias, particularly those associated with digitalis intoxication, has long been recognized. More recently, acute intervention with magnesium in patients who are not hypomagnesemic has demonstrated arrhythmia suppression in 3 settings: digitalis intoxication, long QT-related arrhythmias and arrhythmias after acute myocardial infarction. Although the electrophysiologic effects of magnesium are not clearly understood, magnesium treatment is emerging as an important adjunct in managing certain serious ventricular arrhythmias.

Arrhythmias, Cardiac↗

Congestive heart failure after acute myocardial infarction in patients receiving antiarrhythmic agents for ventricular premature complexes (Cardiac Arrhythmia Pilot Study).

The Cardiac Arrhythmia Pilot Study (CAPS) was a randomized, double-blind trial of antiarrhythmic drugs (encainide, flecainide, moricizine, imipramine and placebo) in 502 patients with an ejection fraction greater than 0.20 and at least 10 ventricular premature complexes/hour, 6 to 60 days after acute myocardial infarction. Patients were followed for 1 year and the incidence of new or worsened congestive heart failure (CHF) was evaluated. Heart failure in the 1-year follow-up was gauged by the development (in order of increasing severity) of new symptoms (grade 1), the need for a change in therapy, including addition of digitalis, addition or increase of dose of diuretics or afterload reduction agents or discontinuation of beta-blocking agents (grade 2), or by hospitalization (grade 3). Sixty-one of 502 patients (12%) required hospitalization for CHF in the 1-year follow-up. One hundred five of 403 patients (26%) in the active treatment group and 18 of 99 patients (18%) in the placebo group (difference not significant) developed CHF requiring hospitalization or a change in therapy or both. Although patients with severely impaired ejection fraction were excluded, new or worsened CHF was common in follow-up during CAPS.

Anilides↗

Classification of deaths after myocardial infarction as arrhythmic or nonarrhythmic (the Cardiac Arrhythmia Pilot Study).

The Cardiac Arrhythmia Pilot Study (CAPS) was a randomized, double-blind trial of antiarrhythmic drugs (encainide, flecainide, moricizine, imipramine and placebo) in 502 patients with at least 10 ventricular premature complexes/hour, 6 to 60 days after acute myocardial infarction. CAPS tested the feasibility of performing a larger study to determine if suppression of ventricular ectopic activity after acute myocardial infarction could improve survival. Patients in CAPS were followed for 1 year. All death or cardiac arrest events were evaluated by at least 2 investigators using a classification scheme that characterized the underlying mechanism as cardiac arrhythmic, cardiac nonarrhythmic or noncardiac. Forty-five patients (9%) died or had cardiac arrest during the 1-year follow-up, 29 (64%) within 1 hour from the onset of symptoms and 16 greater than 1 hour from the onset of symptoms. Twenty-three deaths (51%) were classified as arrhythmic, 19 (42%) as nonarrhythmic and 3 (7%) as noncardiac. Acute myocardial ischemia or infarction was associated with the death/cardiac arrest event in 16 patients (36%), 8 in the arrhythmic death group. Discrepancies in classification among reviewers were particularly common in patients with long-standing symptoms of congestive heart failure, in whom it was frequently difficult to identify the precise moment of the onset of symptoms in the death/cardiac arrest event. Using only the temporal relation of symptoms to categorize deaths or cardiac arrests, the mechanism of 12 (27%) of the 45 patients was in disagreement with the classification based on the Events Committee review. Classification of death as sudden or nonsudden is not equivalent to the classification of death as arrhythmic or nonarrhythmic.

Anti-Arrhythmia Agents↗

Recainam dose titration and pharmacokinetics in patients with resistant arrhythmias.

Recainam, a new antiarrhythmic drug, was evaluated in 20 patients with drug-resistant stable ventricular arrhythmias. Dosage was increased stepwise every 48 to 72 hours until arrhythmia suppression, side effects, or a predetermined maximal dosage occurred. After a pharmacokinetic evaluation, efficacy was confirmed in a double-blind, crossover protocol. One patient had unusable ambulatory ECG data. There were 14 of 19 patients who responded during dose titration; efficacy was confirmed in 11 of 14. The mean effective dosage and trough plasma concentration were 427 mg every 8 hours and 1.83 micrograms/ml, respectively. One patient withdrew because of nausea. Slowing of intraventricular conduction necessitated dosage reduction in two patients. Plasma half-life was 9.4 +/- 4.1 hours, with renal elimination accounting for 62% of oral clearance. However, 66% of the variability in oral drug clearance was the result of nonrenal elimination. Oral recainam at dosages of 300 to 600 mg every 8 hours is effective in some drug-resistant ventricular arrhythmias and is well tolerated.

Administration, Oral↗

Flecainide enantiomers: disposition in human subjects and electrophysiologic actions in vitro.

The antiarrhythmic agent flecainide is administered as a racemate. The disposition of the individual enantiomers and their electrophysiologic actions are unknown. We therefore determined through plasma levels of S-(+)-flecainide and R-(-)-flecainide in 13 patients who were receiving long-term oral flecainide therapy. In addition, the effects of the enantiomers on action potential characteristics in canine cardiac Purkinje fibers were assessed. Plasma concentrations of R-(-)flecainide were significantly higher than those of the S-(+)-enantiomer (-/+ ratio, 1.10 +/- 0.13,mean +/- SD; range, 0.89 to 1.32, p less than 0.01), suggesting that the drug undergoes enantioselective disposition. In the in vitro experiments, both enantiomers reduced phase 0 action potential Vmax (an index of the fast inward sodium current) and shortened action potential duration at 50% and 90% repolarization, but no differences between the enantiomers were detected. The time constants for development of Vmax depression were significantly longer for S-(+)-flecainide (13.4 +/- 1.5 seconds) compared with R-(-)-flecainide (8.9 +/- 0.6 seconds, p less than 0.001). Thus, although S-(+)-flecainide and R-(-)-flecainide undergo modest enantioselective disposition, they exert similar electrophysiologic effects. These studies have provided no evidence to indicate that administration of a single enantiomer, rather that the racemic drug, would offer any advantage.

Action Potentials↗

Mexiletine and tocainide: a comparison of antiarrhythmic efficacy, adverse effects, and predictive value of lidocaine testing.

Thirty patients received one of the lidocaine analogues--mexiletine or tocainide--orally for treatment of symptomatic ventricular arrhythmias. Crossover to the other analogue was allowed if initial drug treatment was unsuccessful, and the controlled use of other marketed oral antiarrhythmic agents was permitted. After follow-up of 7 +/- 3 months (SD), mexiletine was successful in 5 of 13 patients initially and in 5 of 14 patients who failed to respond to tocainide. Tocainide was successful in 1 of 17 patients initially and in 2 of 7 who did not respond to mexiletine. Combination therapy was used in nearly half of all ultimately successful drug trials. A common cause of drug trial failure for both drugs was the occurrence of adverse effects that frequently appeared well after hospital discharge. Response to lidocaine was a sensitive but nonspecific predictor of clinical outcome with mexiletine or tocainide that helped to identify drug-resistant patients. Finally, although mexiletine provided effective antiarrhythmic therapy more often than tocainide, response to one lidocaine analogue did not predict response to the other.

Adult↗

Pharmacokinetic and pharmacodynamic interaction of N-acetyl procainamide and procainamide in humans.

Procainamide is a sodium channel blocker which prolongs QRS and QTc intervals, yet its major active metabolite, N-acetylprocainamide (NAPA), generally prolongs only QTc and has very different electrophysiologic and antiarrhythmic actions. In greater than 50% of patients receiving chronic treatment with procainamide, plasma concentrations of NAPA exceed those of procainamide. In this study, we examined the hypothesis that NAPA might alter the disposition kinetics or pharmacologic actions of procainamide. Ten patients with frequent ventricular extrasystoles received intravenous (i.v.) infusions of procainamide alone (study day 1), procainamide and NAPA (study day 2), and NAPA alone (study day 3) at least 48 h apart. On study days 1 and 2, procainamide was administered at a constant rate for 4 h. On study days 2 and 3, NAPA was administered as a loading and maintenance infusion designed to reach a target pseudo-equilibrium plasma concentration of 8 micrograms/ml. NAPA increased procainamide elimination half-life (t1/2) from 275 +/- 42 min (mean +/- SD) on day 1 to 340 +/- 74 min on day 2 (p less than 0.01). A significant correlations was noted between the change in procainamide total clearance on day 2 relative to day 1 and the initial procainamide total clearance on day 1 (r = -0.77, p = 0.009). Findings were similar when procainamide fractional urinary excretion was considered (r = -0.89, p = 0.007). NAPA did not alter procainamide-induced QRS prolongation, but potentiated procainamide-induced QTc prolongation. The antiarrhythmic response to procainamide was not significantly altered by NAPA in seven of nine patients. One patient had greater arrhythmia suppression when NAPA and procainamide were combined than when either was administered alone. In one patient, NAPA apparently antagonized procainamide-induced arrhythmia suppression, but this effect was not reproducible. We conclude that accumulation of NAPA during procainamide therapy can alter both procainamide elimination as well as its electrophysiologic actions.

Acecainide↗

Genetically-determined interaction between propafenone and low dose quinidine: role of active metabolites in modulating net drug effect.

1. Quinidine is a potent inhibitor of the genetically-determined debrisoquine 4-hydroxylation. Oxidation reactions of several other drugs, including the 5-hydroxylation of the new antiarrhythmic drug propafenone, depend on the isozyme responsible for debrisoquine 4-hydroxylation. 2. The effect of quinidine on the debrisoquine phenotype-dependent 5-hydroxylation and the pharmacological activity of propafenone was studied in seven 'extensive' metabolizers and two 'poor' metabolizers of the drug receiving propafenone for the treatment of ventricular arrhythmias. 3. In patients with the extensive metabolizer phenotype, quinidine increased mean steady-state plasma propafenone concentrations more than two fold, from 408 +/- 351 (mean +/- s.d.) to 1096 +/- 644 ng ml-1 (P less than 0.001), decreased 5-hydroxypropafenone concentrations from 242 +/- 196 to 125 +/- 97 ng ml-1 (P less than 0.02) and reduced propafenone oral clearance by 58 +/- 23%. 4. Despite these changes in plasma concentrations, electrocardiographic intervals and arrhythmia frequency were unaltered by quinidine coadministration, indicating that 5-hydroxypropafenone contributes to the pharmacologic effects of propafenone therapy in extensive metabolizers. 5. In contrasts, plasma concentrations of propafenone and 5-hydroxypropafenone remained unchanged in the two patients with the poor metabolizer phenotype. 6. Biotransformation of substrates for the debrisoquine pathway can be markedly perturbed by even low doses of quinidine; interindividual variability in drug interactions may have a genetic component.

Adult↗

Stereoselective disposition and pharmacologic activity of propafenone enantiomers.

Propafenone is an antiarrhythmic drug that produces a variable degree of beta-blockade in humans and is administered as a racemate. To examine the relative contribution of the individual enantiomers to pharmacologic effects seen during treatment with propafenone, we assessed the steady-state plasma concentrations of (+)-S-propafenone and (-)-R-propafenone in seven patients who were on long-term oral therapy, and we evaluated the electrophysiologic and beta-blocking properties of both enantiomers in vitro. The metabolism of propafenone is known to be polymorphic and to cosegregate with that of debrisoquine-4-hydroxylation. Among five patients with the extensive metabolizer phenotype (EM), the ratio of the area under the plasma concentration-time curve of (+)-S-propafenone to (-)-R-propafenone was 1.73 +/- 0.15 (mean +/- SD). In the other two patients, who had the poor metabolizer phenotype (PM), the concentrations of both enantiomers were elevated but the S/R ratios were similar to those seen in patients with EM. In canine cardiac Purkinje fibers, both enantiomers produced similar frequency-dependent depression of maximum upstroke of phase 0. In contrast, the affinity of the human lymphocyte beta 2-adrenoceptor was approximately 100-fold greater for (+)-S-propafenone (Ki, 7.2 +/- 2.9 nM) than for the (-)-R-enantiomer (Ki, 571 +/- 141 nM). We conclude that during long-term oral therapy, propafenone undergoes stereoselective disposition in patients with either EM or PM. beta-Blockade during propafenone therapy is likely related to accumulation of (+)-S-propafenone.(ABSTRACT TRUNCATED AT 250 WORDS)

Adult↗

Acute electrophysiologic effects of sodium administration in dogs treated with O-desmethyl encainide.

Conduction slowing is the major in vivo effect of sodium channel blocking drugs. Although this action may promote arrhythmia suppression, apparently paradoxical arrhythmia aggravation does occur. The latter outcome is most frequently seen during treatment with the class IC agents such as encainide or flecainide, which are potent depressors of conduction even at usual plasma concentrations and heart rates. Anecdotal reports in patients with such drug toxicity have suggested a beneficial effect of sodium lactate or NaHCO3 administration. The purpose of this study, therefore, was to examine the changes induced by sodium loading on the electrophysiologic properties of the canine ventricle pretreated with a class IC drug. Thirty dogs received loading and maintenance infusions of O-desmethyl encainide (ODE), an encainide metabolite that as a sodium channel blocker is approximately 10 times more potent than the parent drug. Interventions were administered during the maintenance phase when stable plasma ODE concentrations of 448 +/- 68 (SEM) ng/ml were present, and QRS was prolonged from 62 +/- 1 to 89 +/- 2 msec, and HV was prolonged from 28 +/- 1 to 50 +/- 1 msec. NaHCO3 (5 meq/kg during 1 minute) shortened QRS from 92 +/- 6 to 76 +/- 3 msec and shortened HV from 44 +/- 3 to 37 +/- 3 msec within 10 minutes (both p less than 0.01). NaHCO3 also significantly prolonged endocardial monophasic action potential duration from 231 +/- 22 to 272 +/- 33 msec and decreased serum [K+] from 3.8 +/- 0.2 to 3.0 +/- 0.2 meq/l, but it did not alter plasma ODE concentration.(ABSTRACT TRUNCATED AT 250 WORDS)

Alkalosis, Respiratory↗

Antiarrhythmic efficacy, clinical electrophysiology, and pharmacokinetics of 3-methoxy-O-desmethyl encainide (MODE) in patients with inducible ventricular tachycardia or fibrillation.

In most patients, the clinical effects of therapy with encainide are mediated by the generation of the active metabolites O-desmethyl encainide and 3-methoxy-O-desmethyl encainide (MODE). Data from in vitro and animal studies have indicated that MODE has electrophysiologic and pharmacokinetic features that make its further evaluation desirable; in earlier studies, we found that MODE suppressed chronic high-frequency nonsustained ventricular arrhythmias at plasma concentrations of 50-160 ng/ml. We now report the clinical electrophysiology, antiarrhythmic activity, and pharmacokinetics of MODE in 17 patients with inducible ventricular tachyarrhythmias (VTs) in whom programmed electrical stimulation was performed before drug administration and after one or two sequences of loading and maintenance infusions of MODE. Because the relation between plasma concentration and effect had been incompletely defined, a dose-titration approach was adopted: available pharmacokinetic data were used to construct loading and maintenance infusion regimens that were predicted to attain low plasma concentrations in initial patients while higher infusion rates were evaluated in subsequent patients. MODE prevented VT induction in three of 17 patients and VT cycle length was increased by greater than or equal to 100 msec in a further seven of 17; most responses to MODE occurred at plasma concentrations greater than 556 ng/ml (greater than 1 SD above mean plasma MODE during encainide therapy). Response to MODE did not predict subsequent response to oral therapy with encainide. MODE increased intracardiac conduction times, QT intervals during atrial and ventricular pacing, and right ventricular effective refractory periods (RVERP); changes in RVERP were most prominent at rapid pacing rates, while changes in intracardiac conduction were rate-independent at cycle lengths between 400 and 600 msec. Plasma MODE concentrations measured during electrophysiology study correlated well with those predicted by the pharmacokinetic simulations (r = 0.91, p less than 0.001). Serial plasma sampling after programmed electrical stimulation indicated a minimum MODE elimination half-life of 8.2 +/- 5.4 hours. Side effects were confined to three instances of asymptomatic conduction system depression in subjects with latent conduction system disturbances. We conclude that MODE slows intracardiac conduction, delays repolarization, and can suppress or substantially modify inducible VT. Moreover, it was only with the adoption of the dose-titration strategy that we were able to safely demonstrate that plasma MODE concentrations higher than those routinely observed during encainide therapy were required to substantially alter cardiac electrophysiology.

Adult↗

Effect of low dose quinidine on encainide pharmacokinetics and pharmacodynamics. Influence of genetic polymorphism.

Encainide biotransformation to its active metabolites O-desmethyl encainide and 3-methoxy-O-desmethyl encainide cosegregates with the polymorphic oxidation of debrisoquine. Because quinidine has been reported recently to be a potent inhibitor of the enzyme responsible for this polymorphism (cytochrome P450db1), we tested the hypothesis that quinidine would selectively inhibit encainide metabolism and alter its effects in subjects with the extensive metabolism phenotype for debrisoquine oxidation. Seven subjects with the extensive and four subjects with the poor metabolism phenotype received encainide (60 mg p.o. and 4.5 mg of [14C]encainide i.v. administered simultaneously) alone and during chronic treatment with low dose quinidine (50 mg q 6 hr) in a randomized, crossover design. In extensive metabolizers, quinidine decreased encainide systemic clearance from 935 +/- 541 to 190 +/- 77 ml/min and encainide nonrenal clearance from 782 +/- 474 to 95 +/- 32 ml/min (both P less than .02). In this population, quinidine significantly increased encainide elimination half-life from 1.8 +/- 1.2 to 7.7 +/- 2.4 hr and fractional urinary recovery of unchanged encainide from 17.5 +/- 7.6 to 47.4 +/- 7.8% (both P less than .001). The extent to which quinidine altered these indices of encainide disposition was highly correlated with the metabolic ratio for debrisoquine oxidation (r = 0.62-0.95). Moreover, poor metabolism and QRS prolongation during encainide were blunted by addition of quinidine; the extent of quinidine-induced reversal of encainide-related ECG changes was also correlated with debrisoquine ratio (r = 0.91). In contrast, in poor metabolizers, quinidine did not change encainide disposition kinetics and neither encainide alone nor encainide plus quinidine significantly altered electrocardiographic intervals.(ABSTRACT TRUNCATED AT 250 WORDS)

Adult↗

Role of the electrocardiogram in determining electrophysiologic end points of drug therapy.

Electrocardiographic monitoring can be a useful adjunct to antiarrhythmic therapy, since the electrocardiogram is a simple indicator of net cardiac drug effect, irrespective of factors such as pharmacokinetic variability, drug-metabolite interactions or intraindividual variability in drug sensitivity. Changes associated with antiarrhythmic drug therapy include markers of sodium channel block, such as increased QRS or sinus-ectopic coupling intervals and increased QT interval, a marker of action potential prolongation. Electrocardiographic changes can serve 3 purposes: They can correlate with arrhythmia suppression, they may be a guide to impending drug toxicity, and they can indicate the presence of an antiarrhythmic drug at some electrophysiologically active site in the heart. This latter indication may be used as an assessment of compliance, as a clue to drug-drug interactions that may lower antiarrhythmic drug concentrations or preparatory to electrophysiologic testing when it is desirable to avoid testing patients who have no demonstrable drug effect. Drug-induced changes in the microelectrophysiologic environment may sometimes fail to express themselves on the surface electrocardiogram. Overall, however, the electrocardiogram is an inexpensive, readily available tool to monitor net antiarrhythmic drug effects on the heart. Monitoring of the electrocardiogram should, therefore, be an integral part of managing antiarrhythmic drug therapy in patients with arrhythmias.

Anti-Arrhythmia Agents↗

Electrophysiologic effects of intravenous and oral sotalol for sustained ventricular tachycardia secondary to coronary artery disease.

The electrophysiologic effects of intravenous sotalol (1.5 mg/kg load followed by 0.008 mg/kg maintenance, mean dose 150 +/- 23 mg) and oral sotalol (mean dose 583 +/- 204 mg daily) were prospectively evaluated in 16 patients undergoing electrophysiologic evaluation for sustained ventricular tachycardia (VT) secondary to coronary artery disease. Electrocardiographic intervals, indexes of sinus and atrioventricular node function and indexes of atrial and ventricular function were assessed. Inducibility or noninducibility of sustained VT and characteristics of the induced arrhythmia were also evaluated. Intravenous and oral sotalol exerted similar beta-blocking effects, which included significant prolongation of sinus cycle length (baseline 820 +/- 165 ms, intravenous sotalol 1,077 +/- 206 ms, oral sotalol 1,141 +/- 306 ms), AH interval (baseline 126 +/- 43, intravenous sotalol 169 +/- 42, oral sotalol 197 +/- 55 ms) and Wenckebach cycle length (baseline 375 +/- 70, intravenous sotalol 460 +/- 84, oral sotalol 449 +/- 68 ms). Both intravenous and oral sotalol also prolonged repolarization and refractoriness including significant increases in QT interval (baseline 338 +/- 47, intravenous sotalol 417 +/- 35, oral sotalol 450 +/- 70 ms), atrial effective refractory period (baseline 240 +/- 38, intravenous sotalol 330 +/- 71, oral sotalol 299 +/- 26 ms) and right ventricular effective refractory period (baseline 241 +/- 16, intravenous sotalol 289 +/- 35, oral sotalol 291 +/- 22 ms).(ABSTRACT TRUNCATED AT 250 WORDS)

Administration, Oral↗